首页> 外文期刊>International journal of biological sciences >Proliferation Of Myoblast Skeletal Cells On Three-Dimensional Supermacroporous Cryogels
【24h】

Proliferation Of Myoblast Skeletal Cells On Three-Dimensional Supermacroporous Cryogels

机译:三维超大型冰C上成肌细胞骨骼细胞的增殖。

获取原文
获取原文并翻译 | 示例
           

摘要

Cardiac and skeletal muscle tissue engineering provides a smart approach to overcome problems associated with organ transplantation and cardiac tissue and also lays a platform for superior alternative approaches in muscle regeneration. The aim of the study was to demonstrate cryogel scaffold potential in the field of skeletal muscle and cardiac tissue engineering. Poly-hydroxyethyl methacrylate (pHEMA)-gelatin cryogel scaffold was synthesized using cryogelation technique and such a designed material is being reported first time. Rheology study of the pHEMA-gelatin (HG) suggested that the cryogel scaffolds were stable at different temperatures and phase angle remained constant in both dry and wet state. HG cryogel was able to bear increased stress without leading to deformation. Monitoring the hydration of HG scaffold showed shift from a stiff to a more pliable material and upon continuing hydration, shear modulus remained constant with no further change observed. However, the change in phase angle <0.24° indicates a gradual increase in stiffness of the material over time. Scaffold synthesised using such polymer combinations gave cells a native environment for proliferation and surface stiffness have shown to help in differentiation of the cells. Myoskeletal cell lines were cultured on these scaffolds to check the biocompatibility and cell proliferation. Alamar blue assay performed over a period of 3 weeks analysed the metabolic activity of cells which showed more than 60% increase in the total cellular activity. DNA content of cells was found to be directly related to number of cells present at a given time point and this was found to have increased by more than 50% in 3 weeks. Since in 3-D scaffold the surface area is more in comparison to 2-D, hence better cell proliferation is observed. Hoechst and DAPI staining showed tubular structure and alignment of the cells during formation of the tubules shows promising cellular response to the cryogel matrix. The mechanical strength, stiffness and elastic measurements of the scaffold indicated potential application of these materials for skeletal and cardiac tissue engineering.
机译:心脏和骨骼肌组织工程学为克服与器官移植和心脏组织相关的问题提供了一种明智的方法,并且为肌肉再生中的其他替代方法奠定了平台。该研究的目的是证明在骨骼肌和心脏组织工程领域中的冻凝胶支架潜力。使用冷冻凝胶技术合成了聚甲基丙烯酸羟乙酯(pHEMA)-明胶冷冻凝胶支架,这种设计的材料是首次报道。 pHEMA-明胶(HG)的流变学研究表明,冷冻凝胶支架在不同温度下稳定,并且在干燥和潮湿状态下相角均保持恒定。 HG冷冻凝胶能够承受增加的压力而不会导致变形。监测HG脚手架的水合作用表明其从刚硬的材料转变为更柔软的材料,并且在继续水合作用时,剪切模量保持恒定,没有观察到进一步的变化。但是,相角<0.24°的变化表明材料的硬度随时间逐渐增加。使用这种聚合物组合合成的支架为细胞提供了增殖和表面刚度的天然环境,已证明有助于细胞的分化。在这些支架上培养骨骼肌细胞系,以检查其生物相容性和细胞增殖。在3周的时间内进行的Alamar蓝分析分析了细胞的代谢活性,表明其总细胞活性增加了60%以上。发现细胞的DNA含量与在给定时间点存在的细胞数量直接相关,并且发现在3周内增加了50%以上。因为在3-D支架中表面积比2-D更大,所以观察到更好的细胞增殖。 Hoechst和DAPI染色显示出管状结构,并且在形成小管的过程中细胞的排列显示出有希望的细胞对冷冻凝胶基质的反应。支架的机械强度,刚度和弹性测量表明这些材料在骨骼和心脏组织工程中的潜在应用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号